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Polynomial expansions in likelihoods for spatial data: A case study
Authors:A J Watkins and P Heatley
Institution:(1) Statistics and Operational Research Group, EBMS, University of Wales, Swansea, Singleton Park, SA2 8PP Swansea, United Kingdom
Abstract:This paper illustrates the computational benefits of polynomial representations for quantities in the likelihood function for the spatial linear model based on the power covariance scheme. These benefits include a comprehensive study of likelihoods and maximum likelihood estimators for data. For simplicity, we focus on a relatively simple covariance scheme and data observed at equal intervals along a transect; we briefly indicate how generalizations to more complicated covariance functions and higher dimensions will operate.
Keywords:likelihood  polynomial expansion  power covariance function  range parameter  spatial data  stochastic simulation
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